Ironless magnetic linear motors having levitating and transversal force capacities
An ironless magnetic motor includes a magnetic track and a forcer. The forcer is oriented in a magnetic field across a linear air gap of the magnetic track to generate a drive force parallel to the X drive axis and orthogonal to the Z levitation axis in response to a commutation drive current and to generate a force orthogonal to the X drive axis in response to a commutation coil current being superimposed on and phase shifted from the commutation drive current. To this end, a set of levitating turns of the coil parallel to the X drive axis and orthogonal to the Z levitation axis may be internal or external to magnetic field, and the forcer may be centered or offset from a center X-Z longitudinal axis (CP) of the linear air gap.
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This application claims the benefit of international Application Number PCT/IB2006/052772, filed Aug. 10, 2006, and U.S. Provisional Application Ser. No. 60/712,233 filed Aug. 29, 2005 which are incorporated herein in whole by reference.
The present invention generally relates to ironless magnetic linear motors. The present invention specifically relates to generating two or more controllable orthogonal forces in a ironless magnetic linear motor.
Forcer 40 is disposed within the linear air gap along a center X-Z longitudinal plane CP of the linear air gap as best shown in
Opposing sets of drive turns of coils 41-43 orthogonal to a X drive axis of linear air gap and parallel to a Z levitation axis of linear air gap are internal to magnetic field β as best shown in
A drawback of the structural configuration of ironless magnetic linear motor 20 is its inability to generate a substantially independent levitating force FZ parallel to the Z levitating axis as best shown in
In a first form of the present invention, one set of levitating turns of a coil parallel to the X drive axis and orthogonal to the Z levitation axis is internal to magnetic field, and an opposing set of levitating turns of a coil parallel to the X drive axis and orthogonal to the Z levitation axis is external to magnetic field. A commutation drive current is applied to the coil to generate a drive force parallel to the X drive axis and orthogonal to the Z levitation axis. A commutation levitating current is superimposed on and phase shifted from the commutation drive current to generate a levitating force orthogonal to the X drive axis and parallel to the Z levitation axis.
In a second form of the present invention, a coil of the forcer is offset from a center X-Z longitudinal plane of the linear air gap. A commutation drive current is applied to the coil to generate a drive force parallel to the X drive axis and orthogonal to the Y transversal axis. A commutation transversal current is superimposed on and phase shifted from the commutation drive current to generate a transversal force orthogonal to the X drive axis and parallel to the Y transversal axis.
In a third form of the present invention, a commutation drive current is applied to a coil of the forcer to generate a drive force parallel to the X drive axis. The forcer is orientated with the linear air gap to generate a force orthogonal to the X drive axis in response to an additional commutation coil current being superimposed on and phase shifted from the commutation drive current.
The foregoing forms and other forms of the present invention as well as various features and advantages of the present invention will become further apparent from the following detailed description of various embodiments of the present invention read in conjunction with the accompanying drawings. The detailed description and drawings are merely illustrative of the present invention rather than limiting, the scope of the present invention being defined by the appended claims and equivalents thereof.
Referring to
Opposing sets of drive turns of coils 41-43 orthogonal to the X drive axis and parallel to the Z levitation axis are internal to magnetic field β as best shown in
The present invention provides for a phase shifting of a superimposition of commutation levitating currents IZ1, IZ2 and IZ3 on commutation drive currents IX1, IX2 and IX3, respectively. Specifically, as shown in
Referring to
The present invention provides for a phase shifting of a superimposition of commutation levitating currents IZ1, IZ2 and IZ3 on commutation drive currents IX1, IX2 and IX3, respectively. Specifically, as shown in
Referring to
Opposing sets of drive turns of coils 41-43 orthogonal to the X drive axis and parallel to the Z levitation axis are internal to magnetic field β as best shown in
The present invention provides for a phase shifting of a superimposition of commutation transversal currents IY1, IY2 and IY3 on commutation drive currents IX1, IX2 and IX3, respectively. Specifically, as shown in
In practice, the present invention does not impose any limitations or any restrictions as a system for controlling a ironless magnetic linear motor of the present invention. In one embodiment as illustrated in
Commutation current generator 52 operates to provide a phase shifting of a N number of superimposition of commutation levitating currents IZ on respective commutation drive currents IX and/or a phase shifting of a N number of superimposition of commutation transversals currents IY on respective commutation drive currents IX as shown in
Referring to
Referring to
Referring to
Referring to
While the embodiments of the invention disclosed herein are presently considered to be preferred, various changes and modifications can be made without departing from the spirit and scope of the invention. The scope of the invention is indicated in the appended claims, and all changes that come within the meaning and range of equivalents are intended to be embraced therein.
Claims
1. An ironless magnetic motor system for moving an object comprising a pair of motors coupled to opposing sides of the object, wherein each motor of the pair of motors comprises:
- a magnetic track having an X drive axis and a Z levitation axis, the magnetic track including two rows of magnets linearly arranged along the X drive axis and separated by a linear air gap for generating a magnetic field across the linear air gap;
- a forcer including a set of coils disposed within the linear air gap, a coil of the set of coils having two levitating turn parallel to the X drive axis and orthogonal to the levitation axis and two drive turns orthogonal to the X drive axis and parallel to the Z levitation axis, wherein the two drive turns are connected together at opposite ends by the two levitating turns to form the coil; and
- a commutation current generator for generating a commutation current for moving the force=along the X drive axis and for moving the forcer along the Z levitation axis,
- wherein the forcer is offset from a center X-Z longitudinal plane of the linear air gap so that the forces is closer to a first row of magnets than to as second row of magnets of the two rows of magnets, and
- wherein forcers of the pair of motor are offset towards each other.
2. The ironless magnetic motor system of claim 1, further comprising a sensor configured to determine a position of the forcer within the magnetic field.
3. The ironless magnetic motor system of claim 1, further comprising a further pair of motors so that a first side of the object has first and second motors that are perpendicular to each other, and a second side of the object has third and fourth motors that are perpendicular to each other.
4. An ironless magnetic motor system far moving an object comprising pair of motors coupled to opposing sides of the object, wherein each motor of the pair of motors comprises:
- a magnetic track having an X drive axis and a Z levitation axis, the magnetic track including two rows of magnets linearly arranged along the X drive axis and separated by a linear air gap for generating a magnetic field across the linear air gap;
- a forcer including a set of coils disposed within the linear air gap, a coil of the set of coils having two levitating turns parallel to the X rive axis and orthogonal to the Z levitation axis and two drive turns orthogonal to the X drive axis and parallel to the Z levitation axis, wherein the two drive turns are connected together at opposite ends by the two levitating turns to form the coil; and
- a commutation current generator for generating a commutation current for moving the forcer along the X drive axis and for moving the forcer along the Z levitation axis,
- wherein the forcer is offset from a center X-Z longitudinal plane of the linear air gap so that the forces is closer to a first row of magnets than to a second row of magnets of the two rows of magnets, and
- wherein a first forcer of a first motor of the pair of motors is of away the object and a second forcer of a second motor of the pair of motors is offset towards the object.
5. The ironless magnetic motor system of claim 4, further comprising a sensor configured to determine a position of the forcer within the magnetic field.
6. The ironless magnetic motor system of claim 4, further comprising a further pair of motors so that a first side of the object has first and second motors that are perpendicular to each other, and the second side of the object has third and fourth motors that are perpendicular to each other.
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Type: Grant
Filed: Aug 10, 2006
Date of Patent: Aug 12, 2014
Patent Publication Number: 20080246348
Assignee: Koninklijke Philips N.V. (Eindhoven)
Inventors: Georgo Angelis (Oss), David Biloen (Rotterdam)
Primary Examiner: John K Kim
Application Number: 12/064,967
International Classification: H02K 41/02 (20060101);